Bone harvesting
Methods and devices for harvesting cancellous bone are disclosed. The bone-harvesting device may include a cannula and a bone receptacle in communication with the cannula, wherein the cannula including a cutting surface positioned at or adjacent the distal end, the cutting surface being oriented at an angle, the angle being greater than 90 degrees relative to the longitudinal axis of the cannula, and the harvested bone is adapted to move from a position adjacent to the cutting surface through the cannula into the bone receptacle. The cutting surface of the cannula may be positioned at or adjacent the distal end, and positioned at least in part radially outward of the outer face of the cannula. The cannula may include a cutting surface positioned at or adjacent the distal end and an occluding geometry that partially occludes the distal end of the cannula adjacent the cutting surface. In addition, a suction port may be provided in communication with the bone receptacle.
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This application is a continuation of U.S. patent application Ser. No. 18/540,537, filed on Dec. 14, 2023, which is a continuation of U.S. patent application Ser. No. 17/173,050, filed on Feb. 10, 2021, which claims priority benefit to a U.S. patent application entitled “Bone Harvesting,” which was filed Nov. 6, 2017 and assigned Ser. No. 15/804,293, which was a continuation application that claimed priority benefit to a U.S. patent application entitled “Bone Harvesting,” which was filed Oct. 24, 2014 and assigned Ser. No. 14/523,252 (now U.S. Pat. No. 9,833,248, issued Dec. 5, 2017), which was a continuation application claiming priority benefit to a PCT application entitled “Bone Harvesting,” which was filed on Mar. 15, 2013 and assigned Serial No. PCT/US2013/032531, and which in turn claimed priority benefit to U.S. provisional patent applications designated by Ser. Nos. 61/640,313, filed Apr. 30, 2012, and 61/643,662, filed May 7, 2012, all of which are hereby incorporated by reference herein in their entirety.
SUMMARYMethods and devices for harvesting cancellous bone are disclosed.
BACKGROUNDBone grafts are used in surgical procedures that require the fusion, healing or joining of bones. Often bone grafts are harvested from the cancellous bone of a patient's own body, for example from the iliac crest, the fibula, the ribs, the mandible, or any other area where cancellous bone is accessible.
The bone harvesting device has a hollow cannula with a straight proximal portion 4 and a curved distal portion 5. In some embodiments the cross-sectional geometry of the proximal portion 4 changes along its length, for example it may be tapered; as shown the cross-section geometry of the proximal portion 4 is constant along its length. (See
In some embodiments, the cancellous bone is cut only with the cutting edge of the distal tip. But other embodiments may include additional cutting technologies, for example, ultrasonic vibration, supersonic vibration, piezoelectric microvibration, or abrasive water jet cutting.
The device can also include technology to allow the user to sense how the distal tip is interacting with the bone, even when the tip cannot be directly visualized, for example, by use of an infrared or visible light camera, possibly an endoscopic camera, ultrasound visualization, piezoelectric sensors, or pressure or force sensors. Any such sensors can provide feedback to the user.
The device can also include indicia that may allow the user to know the orientation of the cutting edge and the curved distal portion, even when the distal portion cannot be directly visualized. The indicia may be structural, or drawn, etched, painted, etc., onto a handle portion, so that the user may perceive, for example by sight or feel, the orientation of the hidden distal tip of the device as shown in
The cutting edge can have varying geometry such that, when the tip is moved in one direction a certain type of cutting motion is executed, while a different cutting motion is executed on a stroke in a different direction.
The cannula can include a low-friction coating on its interior to improve passage of harvested bone through the cannula into the bone receptacle. Possible coatings include Teflon® PTFE, Teflon® TFE, Teflon® S, Teflon® FEP, Teflon® PFA, Eclipse®, Dykor®, Xylan®, Xylan® XLR, Xylar®, Xylac®, various ceramics, the TEC-thermcote family of materials, and the TEC-fluorcote family of materials.
In some embodiments, a bone-harvesting device can include a cannula and a bone receptacle. The cannula can include a proximal end, a straight proximal portion, adjacent to the proximal end, that defines an axis, a curved distal portion that bends through an angle of at least 90 degrees and no more than 180 degrees relative to the axis, a distal end, adjacent to the distal portion, at least a part of the distal end being sharpened to form a cutting edge, and an occluding member that partially, but not fully, occludes the distal end. The bone receptacle can include a suction port and an entry port. The entry port can be attached to the proximal end of the cannula such that, when suction is applied to the suction port, the suction draws from the distal end of the cannula, through the cannula, and into the bone receptacle. In other embodiments, the curved distal portion can bend through an angle of more than 0 degrees but less than 90 degrees.
In some embodiments the cannula can include a proximal end, a straight proximal portion, a curved distal portion, a distal end adjacent to the distal portion, at least a part of the distal end being sharpened to form a cutting edge, and an occluding member that partially, but not fully, occludes the distal end. The bone receptacle can include a suction port, an entry port, and a filter that (a) fully covers the suction port, (b) is permeable to fluid, and (c) is impermeable to particles of cancellous bone whose smallest dimension is more than 0.25 millimeters in size (for example). The entry port can be attached to the proximal end of the hollow cannula such that, when suction is applied to the suction port, the suction draws from the distal end of the cannula, through the cannula, and into the bone receptacle.
The distal cutting tip can be coupled with irrigation.
All versions of the device described above can be part of a kit that, for example, could include combinations of the following: a flexible plunger, a stiff plunger, elongated accessory to remove material from bone receptacle, a hole saw, trephine device, drill tap, guidewire, reamer/drill bit, cannulated reamer/drill bit, or reamer/drill bit sleeve for penetrating the compact bone, interchangeable cutting tips, and/or separate biological material catching unit such as a blood reservoir.
Any of the devices and methods disclosed herein can also include technology to allow the user to sense how the distal tip is interacting with the bone, even when the tip cannot be directly visualized. For example the tip could be visualized by use of an infrared or visible light camera, possibly an endoscopic camera, by ultrasound visualization, by piezoelectric sensors, or pressure or force sensors.
A bone-harvesting device can include a cannula and a bone receptacle. The cannula can include a proximal end, a proximal portion adjacent to the proximal end that defines an axis, a curved distal portion that bends through an angle of at least 90 degrees and no more than 180 degrees relative to the axis, and a distal end, adjacent to the distal portion, at least a part of the distal end being sharpened to form a cutting edge. The bone receptacle can include a suction port and an entry port. The entry port can be attached to the proximal end of the cannula such that, when suction is applied to the suction port, the suction draws from the distal end of the cannula, through the cannula, and into the bone receptacle. In such bone-harvesting devices, the cannula can further include an occluding member that partially, but not fully, occludes the distal end. At least a portion of the proximal portion can be curved and not lie along the axis. The cross-sectional geometry of the proximal portion can vary along the length of the proximal portion. The cross-sectional geometry of the proximal portion can be constant along the length of the proximal portion. The suction port can be constructed of a flexible material so that suction may be continuously applied to the suction port while port is bent into different orientations relative to the rest of the device. An axis of symmetry in the suction port can be either parallel or non-parallel to an axis of symmetry in the bone receptacle. The receptacle can include a plurality of suction ports. The receptacle can define a proximal opening and can include a cap removably attached to the bone receptacle thereby sealing the opening. The cap can be removably attached with any one of (a) mating screw threads, (b) an interference fit, (c) a latch, or (d) a clip. The exterior of the bone receptacle is configured to be used as a handle by a human operator. The suction port can be in fluid communication with a reservoir configured to allow passage of gases but to trap liquids and solids.
A bone-harvesting device can include a cannula and a bone receptacle. The cannula can includes a proximal end, a straight proximal portion, a curved distal portion, and a distal end, adjacent to the distal portion, at least a part of the distal end being sharpened to form a cutting edge. The bone receptacle can include a suction port, an entry port, and a filter that (a) fully covers the suction port, and (b) includes at least two sieves positioned so as to have different orientations relative tt the suction port. In such devices each sieve can be generally planar with no two sieves being parallel. The entry port can be attached to the proximal end of the hollow cannula such that, when suction is applied to the suction port, the suction draws from the distal end of the cannula, through the cannula, and into the bone receptacle.
A method of harvesting cancellous bone can include selecting a bone in a patient from which cancellous bone will be harvested, the bone including cancellous bone and compact bone, exposing the cancellous bone by creating a pilot hole through the compact bone, advancing a distal end of a bone harvesting device into the pilot hole along an axis of the bone harvesting device, the distal end including a cutting edge, and excavating cancellous bone into the bone harvesting device by applying the cutting edge to the cancellous bone in a direction not parallel to the axis of the bone harvesting device. The method can include collecting the excavated cancellous bone by drawing the excavated bone through a channel defined by the bone harvesting device without removing the distal end of the bone harvesting device through the pilot hole. In such methods, excavating cancellous bone can include excavating cancellous bone that is not visible along any line of sight through the pilot hole.
Claims
1. A bone harvesting device, comprising:
- a hollow cannula;
- a bone receptacle coupled to a proximal end of the hollow cannula, the bone receptacle including an opening in a proximal end thereof that opens to an interior of the bone receptacle, wherein, in use of the bone harvesting device, applying a suction force to the interior of the bone receptacle can draw harvested bone into the interior through the hollow cannula;
- a removable plunger removably received in the interior of the bone receptacle, the removable plunger including a distal plate, a proximal plate, and a first longitudinally-extending wall section that extends between the distal plate and the proximal plate to establish a bone containment region in the removable plunger for collecting bone between the distal plate and the proximal plate, the bone containment region including a closed first side that is provided by the first longitudinally-extending wall section and an open second side that allows for removal of harvested bone from the bone containment region, the removable plunger further including a second longitudinally-extending wall section that extends in a proximal direction away from the proximal plate outside the bone containment region; and
- a cap removably secured to the bone receptacle over the opening in the proximal end of the bone receptacle,
- wherein the removable plunger is positionable entirely within the bone receptacle when the cap is secured to the bone receptacle.
2. The bone harvesting device of claim 1, wherein the hollow cannula includes an interior passage therein that passes through a proximal end region and a distal end region of the hollow cannula, wherein the proximal end region extends along a longitudinal axis such that the interior passage, in passing through the proximal end region, extends along said longitudinal axis, and wherein the distal end region curves away from the longitudinal axis through an arc whose angular extent is greater than 90 degrees relative to the longitudinal axis such that the interior passage, in passing through the distal end region, extends along said arc.
3. The bone harvesting device of claim 2, wherein the angular extent is no more than 180 degrees relative to the longitudinal axis.
4. The bone harvesting device of claim 2, wherein the angular extent is between 120-150 degrees relative to the longitudinal axis.
5. The bone harvesting device of claim 2, wherein the distal end region includes an opening in an exterior thereof that opens to the interior passage.
6. The bone harvesting device of claim 5, wherein the distal end region includes an occluding geometry that partially occludes the interior passage at the opening.
7. The bone harvesting device of claim 6, wherein the occluding geometry comprises an occluding plate.
8. The bone harvesting device of claim 7, wherein the occluding plate extends across a portion of the interior passage at the opening.
9. The bone harvesting device of claim 5, wherein the distal end region includes a cutting surface proximate the opening.
10. The bone harvesting device of claim 9, wherein the cutting surface defines an edge of the opening.
11. The bone harvesting device of claim 5, wherein the opening is located at a terminal end of the interior passage.
12. The bone harvesting device of claim 2, wherein the proximal end region of the hollow cannula tapers longitudinally such that a distal-most part of the proximal end region has a smaller cross-sectional area than a proximal-most part of the proximal end region.
13. The bone harvesting device of claim 2, wherein the interior passage has a variable cross-sectional geometry along a length of the interior passage.
14. The bone harvesting device of claim 2, wherein the bone receptacle includes a flattened handle portion that is directionally aligned with the way the distal end region curves away from the longitudinal axis.
15. The bone harvesting device of claim 1, wherein the hollow cannula includes: (i) a distal opening in an exterior thereof that opens to an interior passage in the hollow cannula which passes through the hollow cannula; and (ii) an occluding geometry that partially occludes the interior passage at the distal opening.
16. The bone harvesting device of claim 1 further comprising a suction port in communication with the bone receptacle.
17. The bone harvesting device of claim 16, wherein the suction port is formed on the removable cap.
18. The bone harvesting device of claim 1 further comprising a filter positionable inside the bone receptacle for blocking parts of the harvested bone from passing through the suction port.
19. The bone harvesting device of claim 18, wherein the filter includes multiple separate sieve sections that are separated from one another along an exterior of the filter.
20. The bone harvesting device of claim 1, wherein the distal plate and the proximal plate each include respective openings therein to allow harvested bone to pass through the distal plate and the proximal plate.
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Type: Grant
Filed: Dec 5, 2024
Date of Patent: Aug 11, 2026
Patent Publication Number: 20250090179
Assignee: The Johns Hopkins University (Baltimore, MD)
Inventors: Maxim Budyansky (Baltimore, MD), Neil Shah (Baltimore, MD), Akhil Jay Khanna (Baltimore, MD), Khaled M. Kebaish (Baltimore, MD), Lee Hunter Riley, III (Baltimore, MD)
Primary Examiner: Si Ming Ku
Application Number: 18/970,202
International Classification: A61B 17/16 (20060101); A61B 17/3205 (20060101); A61B 17/34 (20060101); A61F 2/46 (20060101); A61M 1/00 (20060101); A61B 17/00 (20060101); A61B 17/32 (20060101); A61B 17/3207 (20060101);